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Interfacing 3D magnetic twisting cytometry with confocal fluorescence microscopy to image force responses in living cells

机译:通过共聚焦荧光显微镜对3D磁性扭曲细胞计数技术进行接口以对活细胞中的力响应进行成像

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摘要

Cells and tissues can undergo a variety of biological and structural changes in response to mechanical forces. Only few existing techniques are available for quantification of structural changes at high resolution in response to forces applied along different directions. Three dimensional-Magnetic Twisting Cytometry (3D-MTC) is a technique for applying local mechanical stresses on living cells. Here we describe a protocol for interfacing 3D-MTC with confocal fluorescence microscopy. In 3D-MTC, ferromagnetic beads are bound to the cell surface via surface receptors followed by their magnetization in any desired direction. A magnetic twisting field in a different direction is then applied to generate rotational shear stresses in any desired direction. This protocol describes how to combine magnetic field-induced mechanical stimulation with confocal fluorescence microscopy and provides an optional extension for super resolution imaging using stimulated emission depletion (STED) nanoscopy. This technology allows for rapid real time acquisition of a living cell’s mechanical responses to forces via specific receptors and for quantifying structural and biochemical changes in the same cell using confocal fluorescence microscopy or STED. The integrated 3D-MTC – microscopy platform takes around 20 days to construct and the experimental procedures require ~4 days when carried out by a life sciences graduate student.
机译:细胞和组织可以响应机械力而经历各种生物学和结构变化。响应沿不同方向施加的力,只有很少的现有技术可用于高分辨率量化结构变化。三维磁扭细胞术(3D-MTC)是一种在活细胞上施加局部机械应力的技术。在这里,我们描述了与共焦荧光显微镜接口3D-MTC的协议。在3D-MTC中,铁磁珠通过表面受体与细胞表面结合,然后沿任何所需方向磁化。然后施加不同方向的扭转磁场,以在任何所需方向上产生旋转剪切应力。该协议描述了如何将磁场诱导的机械刺激与共聚焦荧光显微镜相结合,并为使用激发发射耗尽(STED)纳米显微镜的超分辨率成像提供了可选的扩展。这项技术可以通过共聚焦荧光显微镜或STED快速实时获取活细胞通过特定受体对力的机械反应,并量化同一细胞的结构和生化变化。集成的3D-MTC –显微镜平台需要大约20天的构建时间,而生命科学研究生则需要大约4天的实验程序。

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